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The effects of garlic-derived sulfur compounds on cell proliferation, caspase 3 activity, thiol levels and anaerobic sulfur metabolism in human hepatoblastoma HepG2 cells

机译:大蒜来源的硫化合物对人肝母细胞瘤HepG2细胞增殖,胱天蛋白酶3活性,硫醇水平和厌氧硫代谢的影响

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The aim of the present studies was to determine whether the mechanism of biological action of garlic-derived sulfur compounds in human hepatoma (HepG2) cells can be dependent on the presence of labile sulfane sulfur in their molecules. We investigated the effect of allyl sulfides from garlic: monosulfide, disulfide and trisulfide on cell proliferation and viability, caspase 3 activity and hydrogen peroxide (H 2O 2) production in HepG2 cells. In parallel, we also examined the influence of the previously mentioned compounds on the levels of thiols, glutathione, cysteine and cysteinyl-glycine, and on the level of sulfane sulfur and the activity of its metabolic enzymes: rhodanese, 3-mercaptopyruvate sulfurtransferase and cystathionase. Among the compounds under study, diallyl trisulfide (DATS), a sulfane sulfur-containing compound, showed the highest biological activity in HepG2 cells. This compound increased the H 2O 2 formation, lowered the thiol level and produced the strongest inhibition of cell proliferation and the greatest induction of caspase 3 activity in HepG2 cells. DATS did not affect the activity of sulfurtransferases and lowered sulfane sulfur level in HepG2 cells. It appears that sulfane sulfur containing DATS can be bioreduced in cancer cells to hydroperthiol that leads to H 2O 2 generation, thereby influencing transmission of signals regulating cell proliferation and apoptosis.
机译:本研究的目的是确定大蒜衍生的硫化合物在人肝癌(HepG2)细胞中的生物学作用机制是否可以依赖于其分子中不稳定的硫磺硫的存在。我们研究了大蒜中的烯丙基硫化物:单硫化物,二硫化物和三硫化物对HepG2细胞中细胞增殖和活力,胱天蛋白酶3活性和过氧化氢(H 2O 2)产生的影响。同时,我们还研究了上述化合物对硫醇,谷胱甘肽,半胱氨酸和半胱氨酸-甘氨酸的水平以及对硫烷硫的水平及其代谢酶活性的影响:罗丹烷,3-巯基丙酮酸硫转移酶和胱硫醚酶。在研究的化合物中,二烯丙基三硫化物(DATS)是一种含硫硫的化合物,在HepG2细胞中显示出最高的生物活性。该化合物增加了H 2O 2的形成,降低了巯基的水平,并在HepG2细胞中产生了最强的细胞增殖抑制作用和最大的caspase 3活性诱导作用。 DATS不会影响HepG2细胞中硫转移酶的活性和硫磺水平的降低。似乎含有硫磺硫的DATS可以在癌细胞中被生物还原为氢过硫醇,从而导致H 2O 2生成,从而影响调节细胞增殖和凋亡的信号的传递。

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